/* 字符串最大公因子
对于字符串 S 和 T,只有在 S = T + ... + T(T 与自身连接 1 次或多次)时,我们才认定 “T 能除尽 S”。
返回最长字符串 X,要求满足 X 能除尽 str1 且 X 能除尽 str2。
示例 1:
输入:str1 = "ABCABC", str2 = "ABC"
输出:"ABC"
示例 2:
输入:str1 = "ABABAB", str2 = "ABAB"
输出:"AB"
链接:https://leetcode-cn.com/problems/greatest-common-divisor-of-strings*/
//直接解题思路 (结果正确,效率不怎么样)
public static String gcdOfStrings(String str1, String str2) {
int len1 = str1.length();
int len2 = str2.length();
StringBuilder sb = new StringBuilder();
if (len1 >= len2) {
for (int i = 0; i < len2; i++) {
if (len1 % (len2 - i) == 0 && len2 % (len2 - i) == 0) {
String substring = str2.substring(0, len2 - i);
if ("".equals(str1.replaceAll(substring, "")) && "".equals(str2.replaceAll(substring, ""))) {
return substring;
}
}
}
} else {
for (int i = 0; i < len1; i++) {
if (len1 % (len1 - i) == 0 && len2 % (len1 - i) == 0) {
String substring = str1.substring(0, len1 - i);
if ("".equals(str1.replaceAll(substring, "")) && "".equals(str2.replaceAll(substring, ""))) {
return substring;
}
}
}
}
return "";
}
//第二种
//辗转相除法
public static int gcd(int a ,int b){
if(a%b == 0){
return b;
}else{
return gcd(b,a%b);
}
}
public static String gcdOfStrings2(String str1, String str2) {
int len1 = str1.length();
int len2 = str2.length();
int gcd = 0;
if (len1 >= len2) {
gcd = gcd(len1,len2);
} else {
gcd = gcd(len2,len1);
}
String substring = str1.substring(0, gcd);
/*if("".equals(str1.replaceAll(substring, "")) && "".equals(str2.replaceAll(substring, ""))){
return substring;
}*/
if(){
}
return "";
}